标题: | 半导体微共振腔内之耦合行为研究 Investigation of Coupling Behaviors in Semiconductor Microcavities |
作者: | 林萱 Lin, Hsuan 张文豪 Chang, Wen-Hao 电子物理系所 |
关键字: | 微碟共振腔;光子分子;应力调变;耦合;microdisk microcavity;photonic molecules;stress tuning;coupling |
公开日期: | 2012 |
摘要: | 本论文旨于探讨半导体微共振腔内之耦合行为,其主要研究内容涵盖三个主题。首先,在论文的第一部份,我们以应力调变的方式来控制半导体量子点与微碟共振腔中模态的耦合行为。量子点中的激子与共振腔模态其能量因为对于外加的应力有不同的反应速率,所以可以藉此来达成共振。我们清楚地在谱线上观察到了激子与共振腔模态之间的强耦合以及弱耦合行为。此种应力调变的元件可以在固定温度下,双向的调控激子的发光波长而不会显着的影响其发光速率以及半宽。 在了解完单一量子点与共振腔模态的耦合之后,紧接着探讨的是两个微碟共振腔的耦合行为。利用两个紧邻的微碟共振腔所组合而成的光子分子来探讨其强耦合行为。藉由连续的调变其中一个微碟共振腔的折射率,可以清楚的观察到共振模态能量的反交叉以及其半宽的交叉现象。模态耦合理论帮助我们得到两耦合模态间的耦合强度。并且藉由等效位能局限电磁波的概念,我们清楚的解释了在高阶模态与低阶模态间各自不同耦合强度的成因。 最后,为了能够阐明微共振腔在空间上的场分布,我们利用扫描式近场光学显微系统来研究微碟共振腔模态在空间上的分布。藉着光纤探针扫描,扫描式近场光学显微技术可以获得奈米等级的谱线资讯。此种技术可以侦测微碟共振腔以中特定模态在空间上的谱线分布。藉由知晓这些模态的空间分布情况,有利于进行后续的元件整合制成。 This dissertation investigates the coupling behaviors happened in microcavities. The main focus of this dissertation is divided into three parts. At first, we present the control of couplings between quantum dots (QDs) and cavity modes in microdisk (MD) microcavities by a stress tuning scheme. The excitonic transitions and cavity modes are brought into resonance due to their different energy shift rates with the applied strain. Spectral signatures of both strong and weak couplings are clearly observed. The strain tunable device can be used to tune the exciton wavelength bidirectionally at constant temperatures without significantly affecting the emission rate and linewidth of excitons. After demonstrating the couplings between single QDs and cavity modes, the couplings between two MD microcavities are discussed. Strong couplings between cavity modes in photonic molecules (PMs) formed by two preselected nearly identical MD microcavities with embedded QDs are investigated. By continuously tuning the refractive index of one MD, clear anticrossings in the resonant peak energies associated with crossings in the peak linewidths can be observed. The coupling strengths are extracted by the coupled mode theory and analyzed by the model which considering the effective potential confining the electromagnetic waves in the microcavities. At last, in order to clarify the spatial distribution in the microcavities, the spatially resolved characteristics of cavity modes in MD microcavities are investigated by near-field scanning optical microscopy (NSOM) system. The spectrally resolved NSOM technique acquires the emission spectra of nanoscale objects during fiber probe scanning. This technique enables us to detect the position-dependent spectra for a given mode in MD microcavitie. The resolved spatial distribution of cavity modes can provide us more precise locations for the further device integration processing. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#GT079521809 http://hdl.handle.net/11536/41193 |
显示于类别: | Thesis |